Institute of Physical Chemistry, Polish Academy of Sciences, Kasprzaka 44/52, 01-224 Warsaw, Poland.
Dipartimento di Ingegneria, Universit degli Studi Roma tre, via Vito Volterra 62, Rome 00146, Italy.
Phys Rev Lett. 2022 Mar 25;128(12):128001. doi: 10.1103/PhysRevLett.128.128001.
We report new dynamical modes in confined soft granular flows, such as stochastic jetting and dripping, with no counterpart in continuum viscous fluids. The new modes emerge as a result of the propagation of the chaotic behavior of individual grains-here, monodisperse emulsion droplets-to the level of the entire system as the emulsion is focused into a narrow orifice by an external viscous flow. We observe avalanching dynamics and the formation of remarkably stable jets-single-file granular chains-which occasionally break, resulting in a non-Gaussian distribution of cluster sizes. We find that the sequences of droplet rearrangements that lead to the formation of such chains resemble unfolding of cancer cell clusters in narrow capillaries, overall demonstrating that microfluidic emulsion systems could serve to model various aspects of soft granular flows, including also tissue dynamics at the mesoscale.
我们报告了受限软颗粒流中的新动力学模式,如随机射流和滴流,这在连续粘性流体中没有对应物。这些新模式是由于单个颗粒(此处为单分散乳液液滴)的混沌行为传播到整个系统的水平而产生的,当乳液被外部粘性流聚焦到一个狭窄的孔中时,就会出现这种情况。我们观察到雪崩动力学和非常稳定的射流的形成——单颗粒链——它们偶尔会断裂,导致簇大小的非高斯分布。我们发现,导致形成这种链的液滴重排序列类似于癌细胞簇在狭窄毛细血管中的展开,总体上表明微流乳液系统可以用于模拟软颗粒流的各个方面,包括介观尺度上的组织动力学。